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Updated: Apr 21, 2026

Fabrication of Extracellular Matrix-derived Foams and Microcarriers as Tissue-specific Cell Culture and Delivery Platforms
Published on: April 11, 2017
Lightweight and eco-friendly methyl cellulose foams featuring moisture-induced form interlocking: A versatile
Rufei Ge1, Longtai Wang2, Yanzhen Lou2
1School of Materials Science and Engineering, Zhejiang Sci-Tech University, Hangzhou, 310018, China; International Scientific and Technological Cooperation Base of Intelligent Biomaterials and Functional Fibers of Zhejiang Province, Hangzhou, 310018, China; Zhejiang Provincial Key Laboratory of Silk and Silk Protein Materials, Hangzhou, 310018, China; Engineering Laboratory of Chemical Resources Utilization in South Xinjiang of Xinjiang Production and Construction Corps, College of Chemistry and Chemical Engineering, Tarim University, Alar, 843300, China.
Abstract:
The plastic pollution crisis demands sustainable alternatives to petroleum-based foams. Cellulose-based foams, renewable and biodegradable, are a good candidate. In this study, fully degradable cellulose foams are fabricated from methyl cellulose (MC) alone via a simple, additive-free method. The method combines mechanical foaming and oven drying without blowing, stabilizing, or cross-linking agents. First, stable wet foam is obtained by mechanically agitating an aqueous MC solution. Amphiphilic MC molecules stabilize the foam at the air-water interface. During oven-drying, the thermal gelation of MC solidifies the structure into solid foam. The resulting MC foam has a very low density (10.02 mg·cm-3), high porosity (99.28%), and excellent thermal insulation (thermal conductivity as low as 37.35 mW·m-1 K-1). It also has moisture-induced form interlocking capability, retaining 89.5% of its original tensile strength when form-interlocked and adhering well to common packaging materials. Additionally, the MC foam can be chemically modified for extra functionalities like flame retardancy and hydrophobicity. This research presents a new way to fabricate lightweight, moisture-induced form interlocking, and eco-friendly cellulose foams as a sustainable and versatile alternative to conventional plastic foams.
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